mirror of
https://github.com/protocolbuffers/protobuf-go.git
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37ef691e6b
Call the Marshal or Unmarshal method on legacy messages implementing protoV1.Marshaler or protoV2.Unmarshaler. We do this in the impl package by creating an appropriate function in the protoiface.Methods struct for legacy messages. In proto.MarshalAppend, return the bytes provided by the fast-path marshal function even when the returned error is non-nil. Fixes golang/protobuf#955 Change-Id: I36924af9ff959a946c43f2295ef3202216e81b32 Reviewed-on: https://go-review.googlesource.com/c/protobuf/+/197357 Reviewed-by: Joe Tsai <joetsai@google.com>
252 lines
7.9 KiB
Go
252 lines
7.9 KiB
Go
// Copyright 2019 The Go Authors. All rights reserved.
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// Use of this source code is governed by a BSD-style
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// license that can be found in the LICENSE file.
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package proto
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import (
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"sort"
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"google.golang.org/protobuf/internal/encoding/messageset"
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"google.golang.org/protobuf/internal/encoding/wire"
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"google.golang.org/protobuf/internal/mapsort"
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"google.golang.org/protobuf/internal/pragma"
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"google.golang.org/protobuf/reflect/protoreflect"
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"google.golang.org/protobuf/runtime/protoiface"
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)
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// MarshalOptions configures the marshaler.
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//
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// Example usage:
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// b, err := MarshalOptions{Deterministic: true}.Marshal(m)
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type MarshalOptions struct {
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pragma.NoUnkeyedLiterals
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// AllowPartial allows messages that have missing required fields to marshal
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// without returning an error. If AllowPartial is false (the default),
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// Marshal will return an error if there are any missing required fields.
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AllowPartial bool
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// Deterministic controls whether the same message will always be
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// serialized to the same bytes within the same binary.
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//
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// Setting this option guarantees that repeated serialization of
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// the same message will return the same bytes, and that different
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// processes of the same binary (which may be executing on different
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// machines) will serialize equal messages to the same bytes.
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// It has no effect on the resulting size of the encoded message compared
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// to a non-deterministic marshal.
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//
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// Note that the deterministic serialization is NOT canonical across
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// languages. It is not guaranteed to remain stable over time. It is
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// unstable across different builds with schema changes due to unknown
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// fields. Users who need canonical serialization (e.g., persistent
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// storage in a canonical form, fingerprinting, etc.) must define
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// their own canonicalization specification and implement their own
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// serializer rather than relying on this API.
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//
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// If deterministic serialization is requested, map entries will be
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// sorted by keys in lexographical order. This is an implementation
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// detail and subject to change.
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Deterministic bool
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// UseCachedSize indicates that the result of a previous Size call
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// may be reused.
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//
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// Setting this option asserts that:
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//
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// 1. Size has previously been called on this message with identical
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// options (except for UseCachedSize itself).
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//
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// 2. The message and all its submessages have not changed in any
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// way since the Size call.
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//
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// If either of these invariants is broken, the results are undefined
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// but may include panics or invalid output.
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//
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// Implementations MAY take this option into account to provide
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// better performance, but there is no guarantee that they will do so.
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// There is absolutely no guarantee that Size followed by Marshal with
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// UseCachedSize set will perform equivalently to Marshal alone.
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UseCachedSize bool
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}
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var _ = protoiface.MarshalOptions(MarshalOptions{})
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// Marshal returns the wire-format encoding of m.
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func Marshal(m Message) ([]byte, error) {
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return MarshalOptions{}.MarshalAppend(nil, m)
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}
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// Marshal returns the wire-format encoding of m.
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func (o MarshalOptions) Marshal(m Message) ([]byte, error) {
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return o.MarshalAppend(nil, m)
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}
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// MarshalAppend appends the wire-format encoding of m to b,
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// returning the result.
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func (o MarshalOptions) MarshalAppend(b []byte, m Message) ([]byte, error) {
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out, err := o.marshalMessage(b, m.ProtoReflect())
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if err != nil {
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return out, err
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}
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if o.AllowPartial {
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return out, nil
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}
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return out, IsInitialized(m)
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}
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func (o MarshalOptions) marshalMessage(b []byte, m protoreflect.Message) ([]byte, error) {
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if methods := protoMethods(m); methods != nil && methods.MarshalAppend != nil &&
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!(o.Deterministic && methods.Flags&protoiface.SupportMarshalDeterministic == 0) {
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sz := methods.Size(m, protoiface.MarshalOptions(o))
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if cap(b) < len(b)+sz {
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x := make([]byte, len(b), len(b)+sz)
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copy(x, b)
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b = x
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}
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o.UseCachedSize = true
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return methods.MarshalAppend(b, m, protoiface.MarshalOptions(o))
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}
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return o.marshalMessageSlow(b, m)
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}
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func (o MarshalOptions) marshalMessageSlow(b []byte, m protoreflect.Message) ([]byte, error) {
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if messageset.IsMessageSet(m.Descriptor()) {
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return marshalMessageSet(b, m, o)
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}
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// There are many choices for what order we visit fields in. The default one here
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// is chosen for reasonable efficiency and simplicity given the protoreflect API.
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// It is not deterministic, since Message.Range does not return fields in any
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// defined order.
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//
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// When using deterministic serialization, we sort the known fields by field number.
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var err error
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o.rangeFields(m, func(fd protoreflect.FieldDescriptor, v protoreflect.Value) bool {
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b, err = o.marshalField(b, fd, v)
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return err == nil
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})
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if err != nil {
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return b, err
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}
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b = append(b, m.GetUnknown()...)
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return b, nil
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}
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// rangeFields visits fields in field number order when deterministic
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// serialization is enabled.
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func (o MarshalOptions) rangeFields(m protoreflect.Message, f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
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if !o.Deterministic {
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m.Range(f)
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return
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}
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var fds []protoreflect.FieldDescriptor
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m.Range(func(fd protoreflect.FieldDescriptor, _ protoreflect.Value) bool {
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fds = append(fds, fd)
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return true
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})
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sort.Slice(fds, func(a, b int) bool {
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return fds[a].Number() < fds[b].Number()
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})
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for _, fd := range fds {
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if !f(fd, m.Get(fd)) {
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break
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}
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}
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}
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func (o MarshalOptions) marshalField(b []byte, fd protoreflect.FieldDescriptor, value protoreflect.Value) ([]byte, error) {
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switch {
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case fd.IsList():
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return o.marshalList(b, fd, value.List())
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case fd.IsMap():
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return o.marshalMap(b, fd, value.Map())
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default:
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b = wire.AppendTag(b, fd.Number(), wireTypes[fd.Kind()])
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return o.marshalSingular(b, fd, value)
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}
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}
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func (o MarshalOptions) marshalList(b []byte, fd protoreflect.FieldDescriptor, list protoreflect.List) ([]byte, error) {
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if fd.IsPacked() && list.Len() > 0 {
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b = wire.AppendTag(b, fd.Number(), wire.BytesType)
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b, pos := appendSpeculativeLength(b)
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for i, llen := 0, list.Len(); i < llen; i++ {
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var err error
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b, err = o.marshalSingular(b, fd, list.Get(i))
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if err != nil {
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return b, err
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}
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}
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b = finishSpeculativeLength(b, pos)
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return b, nil
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}
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kind := fd.Kind()
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for i, llen := 0, list.Len(); i < llen; i++ {
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var err error
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b = wire.AppendTag(b, fd.Number(), wireTypes[kind])
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b, err = o.marshalSingular(b, fd, list.Get(i))
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if err != nil {
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return b, err
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}
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}
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return b, nil
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}
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func (o MarshalOptions) marshalMap(b []byte, fd protoreflect.FieldDescriptor, mapv protoreflect.Map) ([]byte, error) {
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keyf := fd.MapKey()
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valf := fd.MapValue()
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var err error
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o.rangeMap(mapv, keyf.Kind(), func(key protoreflect.MapKey, value protoreflect.Value) bool {
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b = wire.AppendTag(b, fd.Number(), wire.BytesType)
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var pos int
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b, pos = appendSpeculativeLength(b)
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b, err = o.marshalField(b, keyf, key.Value())
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if err != nil {
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return false
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}
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b, err = o.marshalField(b, valf, value)
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if err != nil {
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return false
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}
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b = finishSpeculativeLength(b, pos)
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return true
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})
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return b, err
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}
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func (o MarshalOptions) rangeMap(mapv protoreflect.Map, kind protoreflect.Kind, f func(protoreflect.MapKey, protoreflect.Value) bool) {
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if !o.Deterministic {
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mapv.Range(f)
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return
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}
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mapsort.Range(mapv, kind, f)
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}
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// When encoding length-prefixed fields, we speculatively set aside some number of bytes
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// for the length, encode the data, and then encode the length (shifting the data if necessary
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// to make room).
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const speculativeLength = 1
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func appendSpeculativeLength(b []byte) ([]byte, int) {
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pos := len(b)
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b = append(b, "\x00\x00\x00\x00"[:speculativeLength]...)
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return b, pos
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}
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func finishSpeculativeLength(b []byte, pos int) []byte {
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mlen := len(b) - pos - speculativeLength
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msiz := wire.SizeVarint(uint64(mlen))
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if msiz != speculativeLength {
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for i := 0; i < msiz-speculativeLength; i++ {
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b = append(b, 0)
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}
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copy(b[pos+msiz:], b[pos+speculativeLength:])
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b = b[:pos+msiz+mlen]
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}
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wire.AppendVarint(b[:pos], uint64(mlen))
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return b
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}
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